Lesson 30: Linear Systems in Three Variables
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1 Lesson 30: Linear Systems in Three Variables Student Outcomes Students solve linear systems in three variables algebraically. Lesson Notes Students solved systems of linear equations in two variables using substitution and elimination in Grade 8 and then encountered the topic again in Algebra I when solving systems of linear equalities and inequalities. This lesson begins with a quick review of the method of elimination to solve a linear system in two variables along with an application problem. We then solve a system of equations in three variables using algebraic techniques. Classwork Opening (2 minutes) This lesson transitions from solving 2-by-2 systems of linear equations as in Algebra I to solving systems of equations involving linear and nonlinear equations in two variables in the next two lessons. These nonlinear systems are solved algebraically using substitution or by graphing each equation and finding points of intersection, if any. This lesson helps remind students how to solve linear systems of equations and introduces them to 3-by-3 systems of linear equations (analyzed later using matrices in Precalculus and Advanced Topics). Exercises 3 (8 minutes) Exercises 3 Determine the value of x and y in the following systems of equations.. 2x + 3y = 7 2x + y = 3 x =, y = x 2y = 4 2x + y = 2 x = 8, y = 8 After this review of using elimination to solve a system, guide students through the setup of the following problem, and then let them solve using the techniques reviewed in Exercises and 2.
2 3. A scientist wants to create 20 ml of a solution that is 30% acidic. To create this solution, she has access to a 20% solution and a 45% solution. How many milliliters of each solution should she combine to create the 30% solution? Solve this problem using a system of two equations in two variables. Solution: Milliliters of 20% solution: x ml Milliliters of 45% solution: y ml Write one equation to represent the total amounts of each solution needed: x + y = 20. Since 30% of 20 ml is 36, we can write one equation to model the acidic portion: Writing these two equations as a system: 0. 20x y = 36. x + y = x y = 36 To solve, multiply both sides of the top equation by either to eliminate x or to eliminate y. The following steps will eliminate x: which gives x + y = 0. 20(20) 0. 20x y = x y = x y = 36. Replacing the top equation with the difference between the bottom equation and top equation results in a new system with the same solutions: The top equation can quickly be solved for y, 0. 25y = x y = 36. y = 48, and substituting y = 48 back into the original first equation allows us to find x: x + 48 = 20 x = 72. Thus, we need 48 ml of the 45% solution and 72 ml of the 20% solution.
3 Discussion (5 minutes) MP. In the previous exercises we solved systems of two linear equations in two variables using the method of elimination. However, what if we have three variables? For example, what are the solutions to the following system of equations? 2x + 3y z = 5 4x y z = Allow students time to work together and struggle with this system and realize that they cannot find a unique solution. Include the following third equation, and ask students if they can solve it now. Scaffolding: Ask students if they can eliminate two of the variables from either equation. (They cannot.) Have a discussion around what that means graphically. (The graph of the solution set is a line, not a point, so there is no single solution to the system.) x + 4y + z = 2 Give students an opportunity to consider solutions or other ideas on how to begin the process of solving this system. After considering their suggestions and providing feedback, guide them through the process in the example below. Example (9 minutes) Example Determine the values for x, y, and z in the following system: 2x + 3y z = 5 () 4x y z = (2) x + 4y + z = 2 (3) Suggest numbering the equations as shown above to help organize the process. Eliminate z from equations () and (2) by subtraction. Replace equation () with the result. 2x + 3y z = 5 4x y z = ( ) 2x + 4y = 6 Our goal is to find two equations in two unknowns. Thus, we will also eliminate z from equations (2) and (3) by adding as follows. Replace equation (3) with the result. 4x y z = x + 4y + z = 2 5x + 3y = Our new system of three equations in three variables has two equations with only two variables in them: 2x + 4y = 6 4x y z = 5x + 3y =. These two equations now give us a system of two equations in two variables, which we reviewed how to solve in Exercises 2.
4 2x + 4y = 6 5x + 3y = At this point, let students solve this individually or with partners, or guide them through the process if necessary. To get matching coefficients, we need to multiply both equations by a constant: 5 2x + 4y = 5(6) 2 5x + 3y = 2() 0x + 20y = 30 0x + 6y = 22. Replacing the top equation with the sum of the top and bottom equations together gives the following: The new top equation can be solved for y: Replace y = 2 in one of the equations to find x: 26y = 52 0x + 6y = 22. y = 2. 5x = 5x + 6 = 5x = 5 x =. Replace x = and y = 2 in any of the original equations to find z: z = z = 5 8 z = 5 z = 3. The solution, x =, y = 2, and z = 3, can be written compactly as an ordered triple of numbers (, 2, 3). Consider pointing out to students that the point (, 2, 3) can be thought of as a point in a three-dimensional coordinate plane, and that it is, like a two-by-two system of equations, the intersection point in three-space of the three planes given by the graphs of each equation. These concepts are not the point of this lesson, so addressing them is optional. Point out that a linear system involving three variables requires three equations in order for the solution to possibly be a single point. The following problems provide examples of situations that require solving systems of equations in three variables.
5 Exercise 4 (8 minutes) Exercises 4 5 Given the system below, determine the values of r, s, and u that satisfy all three equations. r + 2s u = 8 s + u = 4 r s u = 2 Adding the second and third equations together produces the equation r = 6. Substituting this into the first equation and adding it to the second gives 6 + 3s = 2, so that s = 2. Replacing s with 2 in the second equation gives u = 2. The solution to this system of equations is (6, 2, 2). Exercise 5 (6 minutes) Find the equation of the form y = ax 2 + bx + c whose graph passes through the points (, 6), (3, 20), and ( 2, 5). We find a = 2, b =, c = 5; therefore, the quadratic equation is y = 2x 2 x + 5. Students may need help getting started on Exercise 5. A graph of the points may help. MP.7 Since we know three ordered pairs, we can create three equations. 6 = a + b + c 20 = 9a + 3b + c 5 = 4a 2b + c Ask students to explain where the three equations came from. Then have them use the technique from Example to solve this system. Have students use a graphing utility to plot y = 2x O x + 5 along with the original three points to confirm their answer. Closing (2 minutes)
6 We ve seen that in order to find a single solution to a system of equations in two variables, we need to have two equations, and in order to find a single solution to a system of equations in three variables, we need to have three equations. How many equations do you expect we will need to find a single solution to a system of equations in four variables? What about five variables? ú It seems that we will need four equations in four variables to find a single solution, and that we will need five equations in five variables to find a single solution. Exit Ticket (5 minutes)
7 Name Date Lesson 30: Linear Systems in Three Variables Exit Ticket For the following system, determine the values of p, q, and r that satisfy all three equations: 2p + q r = 8 q + r = 4 p q = 2.
8 Exit Ticket Sample Solutions For the following system, determine the values of p, q, and r that satisfy all three equations: 2p + q r = 8 q + r = 4 p q = 2. p = 4, q = 2, r = 2, or equivalently (4, 2, 2)
9 Problem Set Solve the following systems of equations.. x + y = 3 y + z = 6 x + z = 5 2. r = 2 s t 2t = 3 s r r + t = 2s a + 4b + c = 5 a 4b = 6 2b + c = x + y z = 5 4x 2y + z = 0 2x + 3y + 2z = 3 5. r + 3s + t = 3 2r 3s + 2t = 3 r + 3s 3t = 6. x y = 2y + z = 4 x 2z = 6 7. x = 3(y z) y = 5(z x) x + y = z p + q + 3r = 4 2q + 3r = 7 p q r = 2 9. x + y + z = 5 x + y = 2 x z = 2 0. a + b + c = 6 b + c = 5 a b =
10 . Find the equation of the form y = ax 2 + bx + c whose graph passes through the points (, ), (3, 23), and (, 7). 2. Show that for any number t, the values x = t + 2, y = t, and z = t + are solutions to the system of equations below. x + y = 3 y + z = 2 (In this situation, we say that t parameterizes the solution set of the system.) 3. Some rational expressions can be written as the sum of two or more rational expressions whose denominators are the factors of its denominator (called a partial fraction decomposition). Find the partial fraction decomposition for by finding the value of A that makes the equation below true for all n except 0 and. n(nw) n(n + ) = A n n + 4. A chemist needs to make 40 ml of a 5% acid solution. He has a 5% acid solution and a 30% acid solution on hand. If he uses the 5% and 30% solutions to create the 5% solution, how many ml of each does he need? 5. An airplane makes a 400-mile trip against a head wind in 4 hours. The return trip takes 2. 5 hours, the wind now being a tail wind. If the plane maintains a constant speed with respect to still air, and the speed of the wind is also constant and does not vary, find the still-air speed of the plane and the speed of the wind. 6. A restaurant owner estimates that she needs the same number of pennies as nickels and the same number of dimes as pennies and nickels together. How should she divide $26 between pennies, nickels, and dimes?
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